FIELD OF THE INVENTION
[0001] The present invention relates to a remote control lever assembly.
BACKGROUND OF THE INVENTION
[0002] Remote control lever assemblies for bicycle adjustable height seat posts typically
include a pivoting lever, a body on which the pivoting lever is hinged, a clamp for
connecting the body of the assembly to a bicycle handlebar, and a fastener for tightening
the clamp to the handlebar.
[0003] A flexible cable, operatively connected to the height adjustable seat post, is linked
to the pivoting lever; as the lever is moved, the flexible cable is pulled through
the body, and activates a valve or mechanism within the seat post.
[0004] Typical bicycles that use height adjustable seat posts have right and left brake
levers and grips, and a gear shifter on the right and possibly also on the left.
[0005] The remote control lever assembly can potentially be mounted in four positions on
the handlebar: top right, bottom right, top left, and bottom left.
[0006] Most remote control lever assemblies can only be mounted in two positions: top right
and bottom left, or bottom right and top left.
[0007] However, some remote control lever assemblies can be mounted in all four positions:
they typically require some disassembly and reassembly in order to achieve this.
[0008] Most riders have personal preferences for where the remote control lever assembly
is mounted, based, for example, on their bicycle configuration or on possible physical
limitations.
[0009] With particular reference to the gear shifters mounted on the bicycle handlebar,
it is observed that there are mainly two types of shifters: twist shifters and trigger
shifters.
[0010] Twist shifters are higher profile than trigger shifters: usually it is desirable,
for remote control lever assemblies, to be as low profile as possible.
[0011] When a lever assembly is designed for trigger shifters, then normally it will not
fit handlebars with twist shifters, unless the assembly is overly high profile.
[0012] On the other hand, when a lever assembly is designed for twist shifters, then it
will be higher profile than necessary when fitted to handlebars with trigger shifters.
[0013] Existing remote control lever assembly have very limited position adjustability.
[0014] Even if the lever can be placed in all four of the handlebar locations, fine adjustment
is very limited.
[0015] Many lever assemblies are difficult, or impossible, to mount in the desired position,
because the fastener that tightens the assembly to the handlebar is not accessible:
in particular, the brake lever or shifter mounts obstruct fastener access.
[0016] In other cases, the cable exit from the remote lever assembly interferes with the
brake lever of shifter mounts, or with cable routing.
[0017] One kind of existing remote control lever assembly design is not traditionally hinged,
but instead it comprises a joystick-like actuation lever, that can be pushed or pulled
in any direction.
[0018] This design, however, is not as comfortable to use, because it requires pushing on
a round rod rather than a larger pad that better spreads out the load.
[0019] In addition, while the lever can be pushed in any direction, it often has certain
directions where it collides with the shifters, grips, or mounting hardware.
[0020] It should also be noted that many people do not like the "feel" of the motion of
this kind of lever assembly.
[0021] Also, this design has the same lack of adjustability as many of the hinged lever
designs. Another existing remote control lever assembly design is suitable for pushing
ad hydraulic fluid rather than pulling a cable. However, the same adjustable position
limitations occurs as cable pull levers.
OBJECTS OF THE INVENTION
[0022] The technical aim of the present invention is therefore to improve the state of the
art. Within such technical aim, it is an object of the invention to develop a remote
control lever assembly that can be effectively mounted on the handlebar in any desired
position of the latter.
[0023] Another object of the present invention is to devise a remote control lever assembly
in which the mounting position on the handlebar can be finely adjusted in order to
avoid collisions or interferences with other functional parts like brake levers, shifters,
and/or the respective cables.
[0024] A further object of the invention is to develop a remote control lever assembly that
can be indifferently actuated by thumb pushing or finger pulling, depending on the
choice of the user.
[0025] Still another object of the invention is to devise a remote control lever assembly
which allows to achieve the foregoing objects with a simple and economic solution.
SUMMARY OF THE INVENTION
[0026] This aim and these objects are all achieved by a remote control lever assembly, suitable
to be mounted on bicycle handlebars and the like, comprising a coupling portion for
fixing the assembly to the bicycle handlebar, a lever support, and a lever movably
connected to the lever support; the assembly further comprises a spherical joint,
adjustably connecting said lever support to said coupling portion.
[0027] The spherical joint allows an extensive angular and rotational fine position adjustment
of the lever support with respect to the coupling portion.
[0028] More in detail, the spherical joint comprises a spherical housing connected to the
coupling portion, and a spherical protrusion of the lever support adjustably engaging
the spherical housing.
[0029] The coupling portion comprises a first clamp, and the assembly further comprises
a second clamp, connected to the first claim, in which the spherical housing is defined.
[0030] A clamp fastener is foreseen suitable to simultaneously fix the first clamp to the
handlebar and the second clamp to the spherical protrusion.
[0031] In an embodiment of the invention, the assembly further comprises an actuation cable,
connected to the lever; the lever support comprises a first passing channel of the
spherical housing, through which the actuation cable passes; the lever comprises a
second passing channel, through which the actuation cable passes.
[0032] Thanks to the extensive angular and rotational fine position adjustment of the lever
support, the actuation cable won't interfere with shifters and brake levers mounted
on the handlebar.
[0033] According to a further aspect of the invention, the lever comprises a cable set screw
suitable to bend the end of the actuation cable towards the back of the lever itself,
preventing the cable end to interfere with user's fingers while actuating the lever.
BRIEF DESCRIPTION OF THE DRAWINGS
[0034] These and other advantages will be better understood by any person skilled in the
art from the following description that follows and from the attached drawings, given
as a non-limiting example, in which:
figure 1 is a perspective view of a remote control lever assembly according to the
invention;
figure 2 is a top view of the lever assembly;
figure 3 is a front view of the lever assembly;
figure 4 is left side view of the lever assembly;
figure 5 is a right side view of the lever assembly;
figure 6 is an exploded view of the lever assembly;
figure 7 is a section view of the lever assembly taken on plane VII-VII of figure
2;
figure 8 is a section view of the lever assembly taken on plane VIII-VIII of figure
2, during actuation cable tightening;
figure 9 is a section view of the lever assembly taken on plane VIII-VIII of figure
2, after actuation cable is tightened;
figure 10 is a front view of the lever assembly, with the lever placed in a certain
position, set by the user, relative to the coupling portion of the assembly;
figure 11 is a section view of the lever assembly taken on plane VIII-VIII of figure
2, when the lever is positioned as shown in figure 10;
figures 12-14 are respective front views of the lever assembly, with the lever placed
in further different positions, set by the user, relative to the coupling portion
of the assembly;
figure 15 is a perspective view of the lever assembly, mounted in top right position
with respect to the bicycle handlebar;
figure 16 is a perspective view of the lever assembly, mounted in bottom right position
with respect to the bicycle handlebar;
figure 17 is a perspective view of the lever assembly, mounted in bottom left position
with respect to the bicycle handlebar;
figure 18 is a perspective view of the lever assembly, mounted in top left position
with respect to the bicycle handlebar;
figure 19 is a perspective view of the lever assembly, mounted in top right position
with respect to the bicycle handlebar, and in a finger pull orientation.
EMBODIMENTS OF THE INVENTION
[0035] With reference to figure 1, a remote control lever assembly according to the invention
is wholly indicated with 10.
[0036] In the embodiment disclosed hereafter individual characteristics, given in connection
with such specific embodiment, may actually be interchanged with other different characteristics
that exist in other embodiments.
[0037] The remote control lever assembly 10 according to the invention is of the kind suitable
for actuating, for example, an adjustable height seat post, or any other device, installed
on the bicycle, which needs a control operable by a lever, or the like.
[0038] More in detail, the assembly 10 according to the invention is suitable to be mounted
on a bicycle handlebar 20, or the like.
[0039] The assembly 10 comprises a coupling portion, wholly indicated with 30, for fixing
the assembly 10 itself on the handlebar 20.
[0040] The assembly 10 further comprises a lever support 40, and a lever 50 movably connected
to the lever support 40.
[0041] According to an aspect of the invention, the assembly 10 comprises a spherical joint,
wholly indicated with 60, adjustably connecting the lever support 40 to the coupling
portion 30.
[0042] As it will become apparent below the spherical joint 60, foreseen between the coupling
portion 30 and the lever support 40, offers the user the ability to orient the lever
support 40 - and therefore the lever 50 - in the desired position in order not to
interfere to other means mounted on the handlebar 20, and in order to achieve the
best position for the operation of the lever 50, as preferred by the user.
[0043] More in detail, the spherical joint 60 comprises a spherical housing 70.
[0044] The spherical housing 70 is connected to the coupling portion 30.
[0045] The spherical joint 60 further comprises a spherical protrusion 80 of the lever support
40.
[0046] The spherical protrusion 80 adjustably engages the spherical housing 70.
[0047] The coupling portion 30 comprises a first clamp 32.
[0048] The first clamp 32 includes a first clamp member 34 and a second clamp member 36,
hinged in a pivot 38.
[0049] The first clamp member 34 and the second clamp member 36 are both substantially C-shaped.
[0050] The first clamp member 34 and the second clamp member 36 have dimensions and shape
such as to fit the external surface of different handlebars 20, having possibly various
cross-sections.
[0051] According to another aspect of the invention, the assembly 10 comprises a second
clamp, wholly indicated with 90.
[0052] The second clamp 90 is connected to the first clamp 32.
[0053] The above cited spherical housing 70 is defined in the second clamp 90: in particular,
the spherical housing 70 is defined in the inner surface of the second clamp 90.
[0054] The second clamp 90 is substantially in form of a C-bent strip, and its inner surface
is spherically conformed.
[0055] The spherical housing 70 defined in the second clamp 90 has substantially the same
radius of the spherical protrusion 80.
[0056] The second clamp 90 comprises a first terminal portion 92 and a second terminal portion
94 which are opposite each other.
[0057] According to a preferred embodiment of the invention, and with particular reference
to figure 7, the first terminal portion 92 of the second clamp 90 is integral to the
free extremity 33 of the first clamp member 34.
[0058] In this way, the first clamp 32 and the second clamp 90 have respective openings
substantially facing each other with respect to the clamp fastener 100, allowing to
obtain the advantages referred to below.
[0059] The assembly 10 comprises a clamp fastener 100.
[0060] According to a further aspect of the invention, the clamp fastener 100 is suitable
to simultaneously fix the first clamp 90 to the handlebar 20, and the second clamp
32 to the spherical protrusion 80.
[0061] In other words, acting on a single clamp fastener 100, the user can perform, in a
single operation the locking of the whole assembly 10 with respect to the handlebar
20, and the locking of the spherical protrusion 80 inside the spherical housing 70,
as better explained hereafter.
[0062] In an embodiment of the invention, the clamp fastener 100 comprises a clamp screw,
engaged in a common hole 110 passing through the first clamp 32 and the second clamp
90.
[0063] More in detail, the common hole 110 comprises a smooth portion 112 passing through
the free end 37 of the second clamp member 36.
[0064] Moreover, the common hole 110 comprises a hole 114 and a threaded portion 116.
[0065] The hole 114 is passing through the first terminal portion 92 of the second clamp
90 (linked to the free extremity 33 of the first clamp member 34).
[0066] The threaded portion 116 is passing through the second terminal portion 94 of the
second clamp 90.
[0067] It is now evident that as the user tightens the clamp fastener 100, the first terminal
portion 92 approaches the free end 37, and simultaneously the second terminal portion
94 approaches the first terminal portion 92, and both the first clamp 32 and the second
clamp 90 are firmly secured.
[0068] In a preferred embodiment of the invention, the lever 50 is hinged to the lever support
40.
[0069] More in detail, the lever support 40 and the lever 50 include respective linkage
portions 42,52, connected by hinge fasteners 44,54.
[0070] The linkage portions 42 of the lever support 40 are shaped like identical opposite
appendages defining a seat 46 between them, in which the linkage portion 52 of the
lever 50 engages.
[0071] The lever 50 comprises an actuating end 56.
[0072] The actuating end 56 is suitable for operating the lever 50.
[0073] The remote control lever assembly 10 comprises an actuation cable 120, connected
to the lever 50.
[0074] The lever support 40 comprises a first passing channel 122 foreseen in the spherical
protrusion 80, through which the actuation cable passes 120.
[0075] The axis of the first passing channel 122 coincides with the symmetry axis of the
spherical protrusion 80.
[0076] The first passing channel 122 is at least partially, or totally, threaded.
[0077] The lever 50 comprises a second passing channel 124, through which the actuation
cable 120 passes.
[0078] When the lever 50 is in its inactive position (see for example figure 9), the second
passing channel 124 is coaxial, or substantially coaxial, to the first passing channel
122. The lever 50 comprises a recess 51, foreseen in its back.
[0079] The second passing channel 124 intercepts the recess 51.
[0080] The lever 50 further comprises a cable set screw 53.
[0081] The cable set screw 53 is suitable to bend the end 121 of the actuation cable 120
towards the back of the lever 50.
[0082] As it will become clearer below, thanks to this solution, the end 121 of the actuation
cable 120 is safely out of the way to prevent inadvertent contact with fingers.
[0083] The cable set screw 53 is engaged in a threaded hole 55 intercepting the second passing
channel 124.
[0084] Reference is now made to figure 8, which shows a section of the assembly 10 before
the actuation cable 120 has been tightened into position by the cable set screw 53.
[0085] The actuation cable 120 is straight before tightening the cable set screw 53 in the
threaded hole 55.
[0086] Figure 9 shows a section of the assembly 10 after actuation cable 120 has been tightened
into position by the cable set screw 53.
[0087] Tightening the cable set screw 53 secures the actuation cable 120 to the lever 50,
and at the same time it automatically bends the actuation cable 120 into a curve 123
which spring loads the end 121 of the actuation cable 120 against the backside of
the lever 50: in particular, the end 121 of the actuation cable 120 engages the recess
51 of the lever 50.
[0088] This allows, as stated before, actuating the lever 50 from both sides, since cable
end 121 won't interfere with user's fingers movements.
[0089] The spherical protrusion 80 comprises a recessed seat 82 for the engagement of an
adjustable barrel 130 for the fine tuning of the relative actuation cable 120 length
between the assembly 10 and the device actuated by the lever 50, for example the height
adjustable seat post (not shown in the figures).
[0090] The adjustable barrel 130 is slidably coupled to an adjustable screw 140, through
which the actuation cable 120 passes.
[0091] The adjustable screw 140 has a threaded portion engaged in the first passing channel
122 of the spherical protrusion 80, as shown for example in figure 9.
[0092] A compression spring 150 is trapped between rest surfaces 132,142 respectively of
the adjustable barrel 130 and of the adjustable screw 140.
[0093] The compression spring 150 keeps the adjustable barrel 130 permanently engaged in
the recessed seat 82.
[0094] The adjustable screw 140 comprises a front seat 144 engaging the cable housing 160.
[0095] In figures 1-9 the assembly 10 according to the invention is shown in a configuration
in which the axis of the spherical protrusion 80 is substantially parallel to the
axis of the first clamp 32.
[0096] Figures 10 through 14 show some of the adjustments possible because of relative movement
of the spherical protrusion 80 within the spherical housing 70.
[0097] As shown in particular in figure 11, the inclination of the lever support 40, even
at maximum angle with respect to the first clamp 32, does not affect in any way the
operation of the lever 50.
[0098] Figures 13 and 14 show that the lever support 40 can be actually inclined in any
plane with respect to the first clamp 32.
[0099] According to this novel feature the invention, the user can place the lever 50 in
the most comfortable position, in order to have easy access to the lever 50 itself
while riding.
[0100] Figures 15 through 19 show various mounting options of the assembly 10 according
to the invention on the bicycle handlebar 20.
[0101] In particular, figure 15 shows the assembly 10 mounted in top right position with
respect to the bicycle handlebar 20.
[0102] Figure 16 shows the assembly 10 mounted in bottom right position with respect to
the bicycle handlebar 20.
[0103] Figure 17 shows the assembly 10 mounted in bottom left position with respect to the
bicycle handlebar 20.
[0104] Figure 18 shows the assembly 10 mounted in top left position with respect to the
bicycle handlebar 20.
[0105] Figure 19 shows the assembly 10 mounted in top right position with respect to the
bicycle handlebar, and in a finger pull orientation.
[0106] It is noted that all mounting positions shown in figures 15-19 can be achieved without
disassembly of the lever support 40 from the coupling portion 30.
[0107] According to another advantage of the invention, the assembly 10 can fit both trigger
and twist shifters, without being higher profile than necessary.
[0108] The assembly 10 according to the invention can be easily mounted on the handlebar
while maintaining excellent access to the clamp fastener 100, and at the same time
the actuation cable 120 exit doesn't interfere at all with shifters and brake levers.
[0109] More in general, the following assembly parameters can be now easily adjusted: distance
between the handlebar and the lever, lever push angle, and lever swing orientation.
[0110] The conversion between thumb push configuration to finger pull configuration can
be easily and quickly achieved.
[0111] In other embodiments of the invention, not shown in the figures, coupling between
the lever 50 and the lever support 40, instead of being of the hinged type, could
be for example of the sliding type.
[0112] In a further embodiment of the invention, the assembly 10 can be operatively connected
to a hydraulic actuation system, for example suitable for driving a height adjustable
seat post or any other device.
[0113] In particular, at least the lever 50 is operatively connected to an hydraulic actuation
system, and are designed to push and hydraulic fluid which drives a certain device:
such an embodiment of the invention still retain the advantage of extensive position
adjustability.
[0114] The present invention has been described according to preferred embodiments, but
equivalent variants can be devised without departing from the scope of protection
offered by the following claims.
1. A remote control lever assembly (1) suitable to be mounted on bicycle handlebars (20)
and the like, comprising
a coupling portion (30), for fixing the assembly (1) to the bicycle handlebar (20),
a lever support (40), and a lever (50) movably connected to said lever support (40),
a spherical joint adjustably connecting said lever support (40) to said coupling portion
(30).
2. The assembly according to claim 1, in which said spherical joint comprises a spherical
housing (70) connected to said coupling portion (30), and a spherical protrusion (80)
of said lever support (40) adjustably engaging said spherical housing (70).
3. The assembly according to claim 1 or 2, in which said coupling portion comprises a
first clamp (32).
4. The assembly according to claim 3, comprising a second clamp (90), connected to said
first clamp (32), in which said spherical housing (70) is defined.
5. The assembly according to claim 3 or 4, comprising a clamp fastener suitable to simultaneously
fix said first clamp (32) to said handlebar and said second clamp (90) to said spherical
protrusion (80).
6. The assembly according to claim 5, in which said clamp fastener (100) comprises a
clamp screw engaged in a common hole (110) passing through said first clamp (32) and
said second clamp (90).
7. The assembly according to any one of the previous claims, in which said first clamp
(32) and said second clamp (90) have respective openings substantially facing each
other with respect to said clamp fastener (100).
8. The assembly according to claim 1, in which said lever (50) is hinged to said lever
support (40).
9. The assembly according to claim 1, wherein at least said lever (50) is operatively
connected to an hydraulic actuation system.
10. The assembly according to one of the previous claims, comprising an actuation cable
(120) connected to said lever (50).
11. The assembly according to claim 10, in which said lever support (40) comprises a first
passing channel (122) of said spherical housing (70), through which said actuation
cable (120) passes.
12. The assembly of claim 11, in which said lever (50) comprises a second passing channel
(124), through which said actuation cable (120) passes.
13. The assembly of claim 12, in which said lever (50) comprises a cable set screw (53)
suitable to bend the end (121) of said actuation cable (120) towards the back of said
lever (50).
14. The assembly of claim 13, in which said cable set screw (53) is engaged in a threaded
hole (55) intercepting said second passing channel (124).
15. The assembly of claim 12 or 13, in which said lever (50) comprises a recess (51),
foreseen in its back, in which said end (121) of said actuation cable (120) engages.